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Viscous Damping in a Microfluidic Load Sensor

机译:微流载荷传感器中的粘性阻尼

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摘要

A typical microfluidic load sensor consists of an electrolyte-filled microfluidic channel capped by a flexible plate. Under a load applied on the top flexible plate, the fluid within the microchannel is squeezed by the deflected plate, resulting in an opposite hydrodynamic pressure force on the plate. Thus, the electrolyte within the microchannel can induce a significant viscous damping effect on the dynamic response of such a microfluidic load sensor, whose output signal is proportional to the deformation of the flexible plate. Considering the coupling between the deformation of the flexible plate and the hydrodynamic fluid pressure, a mathematical model for analyzing the dynamics and viscous damping of the sensor is developed. Dynamic characteristics of the plate and the equivalent viscous damping coefficient as the functions of the load amplitude and the frequency as well as the sensor’s geometric parameters are investigated. The obtained results qualitatively agree with the experimental observations in the literature. The results show that the load sensor is overdamped, and the viscous damping has significant influences on the dynamic response of the flexible plate in the microfluidic load sensor. The microfluidic channel depth has more significant effects on the plate deformation than the plate’s width and thickness.
机译:典型的微流体载荷传感器由被柔性板覆盖的填充电解质的微流体通道组成。在施加在顶部柔性板上的负载下,微通道内的流体被偏转的板挤压,从而在板上产生相反的流体动力压力。因此,微通道内的电解质可对这种微流体负载传感器的动态响应产生显着的粘性阻尼效应,该微流体负载传感器的输出信号与柔性板的变形成比例。考虑到柔性板的变形与流体动压之间的耦合,建立了用于分析传感器动力学和粘性阻尼的数学模型。研究了板的动态特性和等效粘性阻尼系数,它们是载荷振幅和频率以及传感器的几何参数的函数。获得的结果在质量上与文献中的实验观察结果一致。结果表明,载荷传感器过阻尼,粘性阻尼对微流体载荷传感器中柔性板的动态响应有显着影响。微流体通道深度比板的宽度和厚度对板的变形影响更大。

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